1

I have the below types checking code to verify if userInput is one of the defined value

const variantColorValues = ['primary', 'black', 'green', 'red', 'white'] as const;
export type VariantColor = (typeof variantColorValues)[number];

function isOfTypeVariantColor(selectedColor: string): selectedColor is VariantColor {
  return (variantColorValues as readonly string[]).includes(selectedColor);
}

isOfTypeVariantColor('red') //true
isOfTypeVariantColor('purple') //false

The code above works great. However the code will bulk up if I implement same logic to other properties too, so I thought of turning isOfTypeVariantColor into a generic function.

function isOfType(userInput: string, valueList: string[]): userInput is VariantColor {
  return (valueList as readonly string[]).includes(userInput);
}

And my problem now is that I'm not sure how to turn userInput is VariantColor where VariantColor becoming a parameter

2
  • What do you mean by However the code will bulk up if I implement same logic to other properties too?
    – dwjohnston
    Oct 1 '20 at 3:20
  • @dwjohnston: Imagine I have 100 properties, there will be 100 functions defined to check isOfTypexxx. What I try to achieve is instead, just having single function, that takes in allowed value in array, with its type, and returns a boolean
    – Isaac
    Oct 1 '20 at 3:33
2

You could use this:

// Make sure to make valueList readonly so you can use readonly arrays like variantColorValues
function isOfType<T, U extends T>(userInput: T, valueList: readonly U[]): userInput is U {
  return (valueList as readonly T[]).includes(userInput);
}

const string: string = 'red';
if (isOfType(string, variantColorValues)) {
    string; // VariantColor
}

const number: number = 0
if (isOfType(number, [1, 2, 3] as const)) {
    number; // 1 | 2 | 3
}

T is the user input type and you are checking if userInput is type U. For example, when using isOfType with variantColorValues, T would be string and U would be VariantColor.

Playground link


Edit: Per Gerrit0's comment, you don't actually need two type parameters:

function isOfType2<T>(userInput: unknown, valueList: readonly T[]): userInput is T {
  return (value as readonly unknown[]).includes(userInput);
}

However, it won't pick up on this:

if (isOfType(number, variantColorValues)) {}
//                   ~~~~~~~~~~~~~~~~~~
// Argument of type 'readonly ["primary", "black", "green", "red", "white"]' is not assignable to parameter of type 'readonly number[]'.
//   Type 'string' is not assignable to type 'number'.

if (isOfType2(number, variantColorValues)) {
  number; // never
}

Playground link

4
  • You don't need two generic parameters.
    – Gerrit0
    Oct 1 '20 at 2:35
  • @cherryblossom: I don't see any code at Playground link
    – Isaac
    Oct 1 '20 at 3:35
  • @Isaac The link works for me, even when I opened it in an incognito window. See if tsplay.dev/Gm333m works (it redirects to the same URL). Oct 1 '20 at 7:15
  • @cherryblossom: Works like charm! Thanks!
    – Isaac
    Oct 1 '20 at 8:11
0

Here's how I've done it:

const variantColorValues = ['primary', 'black', 'green', 'red', 'white'] as const;
export type VariantColor = (typeof variantColorValues)[number];

const variantRoleValues = ["teacher", "student"] as const; 
export type VariantRole = (typeof variantRoleValues)[number];

// This possibly isn't needed, it could be just strings, but I think it's good to explicitly narrow the types. 
type PossibleVariants = VariantColor | VariantRole

function isOfType<T extends PossibleVariants>(value: string, arrayOfPossibleValues: readonly T[]) : value is T {
   return (arrayOfPossibleValues as readonly string[]).includes(value);
}

Demo of use:


const t1  = "teacher"; // In this scenario typescript knows this is the narrowest type "teacher"

if (isOfType(t1, variantColorValues)){ // No error, this is what we want right? 
    if (t1 === 'red') { //t1 is of type never, it's annoying that this doesn't give you an error. 
     //see: https://github.com/microsoft/TypeScript/issues/28982
    
    }
}

const t2  = "teacher" as VariantRole; // For demo purposes, lets say we don't know if this is "teacher" or "student"

if (isOfType(t2, variantColorValues)){ // No error, this is what we want right? 
    if (t2 === 'red') { // t2 is of type never
}

const t3  = "teacher" as string; // For demo purposes, we don't know what kind of string this is. 

if (isOfType(t3, variantColorValues)){ // No error, this is what we want right? 
    if (t3 === 'red') { // t3 is of type "red" |"black" ... 

    if (t3 === 'student') { // expected error:  This condition will always return 'false' since the types '"primary" | "black" | "green" | "red" | "white"' and '"student"' have no overlap.(2367)

    }
}


Playground link

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service, privacy policy and cookie policy

Not the answer you're looking for? Browse other questions tagged or ask your own question.